Reversible energy absorbing behaviors of shape-memory thin-walled structures
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M. Baghani | Song Yao | Kui Wang | Jin Wang | Yong Peng | Guangyu Sun
[1] Song Yao,et al. Quasi-static penetration property of 3D printed woven-like ramie fiber reinforced biocomposites , 2023, Composite Structures.
[2] Song Yao,et al. Effects of loading rate and temperature on crushing behaviors of 3D printed multi-cell composite tubes , 2023, Thin-Walled Structures.
[3] Suchao Xie,et al. A reinforced energy-absorbing structure formed by combining multiple aluminum foam-filled open-hole tubes , 2022, International Journal of Mechanical Sciences.
[4] Ramesh Parameswaran,et al. Recent advancements in blended and reinforced polymeric systems as bioscaffolds , 2022, International Journal of Polymeric Materials and Polymeric Biomaterials.
[5] X. Yang,et al. Advances in 4D Printed Shape Memory Polymers: From 3D Printing, Smart Excitation, and Response to Applications , 2022, Advanced Materials Technologies.
[6] Yong Peng,et al. On crashworthiness behaviors of 3D printed multi-cell filled thin-walled structures , 2022, Engineering Structures.
[7] Qing Li,et al. Lightweight hybrid materials and structures for energy absorption: A state-of-the-art review and outlook , 2022, Thin-Walled Structures.
[8] Jiayao Ma,et al. Geometric design, deformation mode, and energy absorption of patterned thin-walled structures , 2022, Mechanics of Materials.
[9] M. R. Abdullah,et al. Crashworthiness capability of thin-walled fibre metal laminate tubes under axial crushing , 2022, Engineering Structures.
[10] S. Ahzi,et al. Progressive collapse behaviors and mechanisms of 3D printed thin-walled composite structures under multi-conditional loading , 2022, Thin-Walled Structures.
[11] Zhenkuan Pan,et al. Energy Absorption Characteristics of a CFRP-Al Hybrid Thin-Walled Circular Tube under Axial Crushing , 2021, Aerospace.
[12] Yanju Liu,et al. Shape memory polymer solar cells with active deformation , 2021, Advanced Composites and Hybrid Materials.
[13] K. Han,et al. Toughening Modification of Polylactic Acid by Thermoplastic Silicone Polyurethane Elastomer , 2021, Polymers.
[14] Yong Zhang,et al. Crushing mechanical responses of natural wood columns and wood-filled composite columns , 2021 .
[15] S. Mondal. Temperature responsive shape memory polyurethanes , 2021 .
[16] R. Sedghi,et al. Synthesis of shape memory electroconductive polyurethane with self-healing capability as an intelligent biomedical scaffold for bone tissue engineering , 2021 .
[17] Yanju Liu,et al. Shape Memory Polymer Fibers: Materials, Structures, and Applications , 2021, Advanced Fiber Materials.
[18] Yanju Liu,et al. Compression behavior and energy absorption of 3D printed continuous fiber reinforced composite honeycomb structures with shape memory effects , 2021 .
[19] M. Stanford,et al. Deformation and energy absorption of additively manufactured functionally graded thickness thin-walled circular tubes under lateral crushing , 2021, Engineering Structures.
[20] G. Lu,et al. Thin-walled corrugated structures: A review of crashworthiness designs and energy absorption characteristics , 2020 .
[21] S. M. Hasan,et al. Shape Memory Polymer Foams Synthesized Using Glycerol and Hexanetriol for Enhanced Degradation Resistance , 2020, Polymers.
[22] Yong Peng,et al. Effects of Scanning Strategy and Printing Temperature on the Compressive Behaviors of 3D Printed Polyamide-Based Composites , 2020, Polymers.
[23] D. Fang,et al. Numerical and experimental studies on compressive behavior of Gyroid lattice cylindrical shells , 2020, Materials & Design.
[24] T. Aravinthan,et al. Effects of fibre orientation and layup on the mechanical properties of the pultruded glass fibre reinforced polymer tubes , 2019, Engineering Structures.
[25] Sahil Goyal,et al. Crashworthiness analysis of foam filled star shape polygon of thin-walled structure , 2019, Thin-Walled Structures.
[26] K. Zhou,et al. Thermo-elastic-viscoplastic-damage model for self-heating and mechanical behavior of thermoplastic polymers , 2019, International Journal of Plasticity.
[27] Bo Wang,et al. An integrated macro/micro-scale approach for in situ evaluation of matrix cracking in the polymer matrix of cryogenic composite tanks , 2019, Composite Structures.
[28] Jiangfeng Dong,et al. Mechanical behaviour of concrete-filled double-skin steel tube (CFDST) with stiffeners under axial and eccentric loading , 2019, Thin-Walled Structures.
[29] Abraham Mengesha Woldemariam,et al. Structural Performance of uPVC Confined Concrete Equivalent Cylinders Under Axial Compression Loads , 2019, Buildings.
[30] Qing Li,et al. Crash responses under multiple impacts and residual properties of CFRP and aluminum tubes , 2018, Composite Structures.
[31] Haifeng Yang,et al. Experimental study on the crush behavior and energy-absorption ability of circular magnesium thin-walled tubes and the comparison with aluminum tubes , 2018, Engineering Structures.
[32] Xin Lan,et al. Shape memory behavior and recovery force of 4D printed textile functional composites , 2018 .
[33] L. Krstulović-Opara,et al. Axial crush behaviour of the aluminium alloy in-situ foam filled tubes with very low wall thickness , 2018 .
[34] M. Shariati,et al. Experimental analysis of energy absorption capability of thin-walled composite cylindrical shells by quasi-static axial crushing test , 2018 .
[35] Xiaodong Huang,et al. Topological configuration analysis and design for foam filled multi-cell tubes , 2018 .
[36] Aiguo Cheng,et al. Modeling for CFRP structures subjected to quasi-static crushing , 2018 .
[37] Zhenbao Li,et al. Size effect in circular concrete-filled steel tubes with different diameter-to-thickness ratios under axial compression , 2017 .
[38] F. Tarlochan,et al. Collapse behavior of thin-walled corrugated tapered tubes , 2017 .
[39] Suman Thakur and Jinlian Hu,et al. Polyurethane: A Shape Memory Polymer (SMP) , 2017 .
[40] Richard S. Trask,et al. 3D printed polyurethane honeycombs for repeated tailored energy absorption , 2016 .
[41] Sadjad Pirmohammad,et al. Crushing behavior of new designed multi-cell members subjected to axial and oblique quasi-static loads , 2016 .
[42] Qiang Liu,et al. Experimental study on crashworthiness of empty/aluminum foam/honeycomb-filled CFRP tubes , 2016 .
[43] H. Qi,et al. Recent progress in shape memory polymer: New behavior, enabling materials, and mechanistic understanding , 2015 .
[44] L. Tong,et al. Shape memory and thermo-mechanical properties of shape memory polymer/carbon fiber composites , 2015 .
[45] M. K. Khan,et al. Experimental investigation of in-plane and out-of-plane crushing of aluminum honeycomb , 2012 .
[46] A. A. Nia,et al. Comparative analysis of energy absorption and deformations of thin walled tubes with various section geometries , 2010 .
[47] M. Lei,et al. Sequentially tunable buckling in 3D printing auxetic metamaterial undergoing twofold viscoelastic resonances , 2021, Smart Materials and Structures.
[48] A. Arias,et al. Temperature and strain rate dependences on hardening and softening behaviours in semi-crystalline polymers: Application to PEEK , 2020 .
[49] M. Salit,et al. The crashworthiness performance of stacking sequence on filament wound hybrid composite energy absorption tube subjected to quasi-static compression load , 2020 .
[50] Rafea Dakhil Hussein,et al. Crushing response of square aluminium tubes filled with polyurethane foam and aluminium honeycomb , 2017 .
[51] S. Das,et al. Energy absorption capabilities of aluminium foam -filled square tube , 2014 .